Aluminum alloy fin material and heat exchanger
Abstract
An aluminum alloy fin material and a heat exchanger having excellent moldability, strength, resistance to brazing erosion and durability are provided. The aluminum alloy fin material has a composition comprising, in % by mass, Zr: 0.05 to 0.3%, Mn: 1.8 to 2.5%, Si: 0.7 to 1.3%, Fe: 0.05 to 0.5%, Cu: 0.25 to 0.7%, Zn: 2.0 to 5.0%, with the balance being Al and inevitable impurities, wherein a ratio of Mn/Si in terms of content is in a range of 1.5 to 2.9, and the aluminum alloy fin material has a tensile strength before brazing of 210 to 280 MPa, a tensile strength after brazing of 175 MPa or more, an electrical conductivity after brazing of 37% IACS or more, and a solidus temperature of 605° C. or more, and has a crystal grain structure before brazing of a non-recrystallized grain structure, and has an average crystal grain size in a rolled surface after brazing of 300 μm to 2,000 μm.
Claims
exact text as granted — not AI-modified1 . An aluminum alloy fin material having a composition comprising, in % by mass, Zr: 0.05 to 0.3%, Mn: 1.8 to 2.5%, Si: 0.7 to 1.3%, Fe: 0.05 to 0.5%, Cu: 0.25 to 0.7%, Zn: 2.0 to 5.0%, with the balance being Al and inevitable impurities, wherein a ratio of Mn/Si in terms of content is in a range of 1.5 to 2.9, and the aluminum alloy fin material has a solidus temperature of 605° C. or more, a tensile strength before brazing of 210 to 280 MPa, and has a crystal grain structure before brazing of a non-recrystallized grain structure, a tensile strength after brazing of 175 MPa or more, an electrical conductivity after brazing of 37% IACS or more, and an average crystal grain size in a rolled surface after brazing of 300 μm to 2,000 μm.
2 . The aluminum alloy fin material according to claim 1 , wherein, Mn-containing Al—Mn-based particles having a circle-equivalent diameter of 400 nm or less among second phase particles distributed in matrix before brazing, have an average diameter in a range of 40 to 90 nm, and a number density thereof is within a range of 6 to 13 particles/μm 2 .
3 . The aluminum alloy fin material according to claim 1 , wherein, Mn-containing Al—Mn-based particles having a circle-equivalent diameter of 400 nm or less among second phase particles distributed in matrix after brazing, have an average diameter in a range of 50 to 100 nm, and a number density thereof is 5 particles/μm 2 or more.
4 . The aluminum alloy fin material according to claim 2 , wherein, Mn-containing Al—Mn-based particles having a circle-equivalent diameter of 400 nm or less among second phase particles distributed in matrix after brazing, have an average diameter in a range of 50 to 100 nm, and a number density thereof is 5 particles/μm 2 or more.
5 . A heat exchanger prepared by brazing the aluminum alloy fin material according to claim 1 and an aluminum material.
6 . A heat exchanger prepared by brazing the aluminum alloy fin material according to claim 2 and an aluminum material.
7 . A heat exchanger prepared by brazing the aluminum alloy fin material according to claim 3 and an aluminum material.Join the waitlist — get patent alerts
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